S-adenosyl methionine prevents promiscuous DNA cleavage by the EcoP1I type III restriction enzyme

Luke J Peakman1, Massimo Antognozzi, Thomas A Bickle

  • 1DNA-Protein Interactions Group, Department of Biochemistry, University of Bristol, Bristol BS8 1TD, UK.

Insights

The cofactor S-adenosyl methionine (AdoMet) influences EcoP1I endonuclease DNA cleavage specificity. Without AdoMet, buffer salt composition dictates cleavage, revealing AdoMet

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Enzymology

Background:

  • Type III restriction enzymes, like EcoP1I, play a crucial role in DNA metabolism.
  • Understanding their cleavage mechanisms is vital for molecular biology applications.
  • The cofactor S-adenosyl methionine (AdoMet) is known to influence endonuclease activity.

Purpose of the Study:

  • To investigate the cleavage activity of the type III restriction endonuclease EcoP1I.
  • To determine the role of S-adenosyl methionine (AdoMet) in EcoP1I DNA cleavage.
  • To analyze the influence of buffer composition and salt ions on EcoP1I activity.

Main Methods:

  • Analysis of DNA cleavage by EcoP1I on circular and catenane DNA substrates.
  • Experimentation with various buffer conditions, including different salts and the presence/absence of AdoMet.
  • Enzyme kinetics studies to determine reaction rates and enzyme-to-site ratios.

Main Results:

  • In the presence of AdoMet, cleavage occurred only on substrates with two EcoP1I sites in inverted repeat.
  • In the absence of AdoMet, cleavage patterns were dependent on buffer salt composition (Na+ vs. K+).
  • K+ ions facilitated cleavage of various substrates, including those with single or directly repeated sites, at lower enzyme concentrations.

Conclusions:

  • AdoMet acts as an allosteric activator and a specificity factor for EcoP1I, ensuring cleavage only occurs with specific site orientations.
  • Buffer composition, particularly the cation, significantly impacts EcoP1I activity in the absence of AdoMet.
  • AdoMet is not strictly required for DNA cleavage by type III enzymes under specific conditions, but it enhances specificity and efficiency.

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